» Articles » PMID: 28251046

Rapid 3D Refractive-Index Imaging of Live Cells in Suspension Without Labeling Using Dielectrophoretic Cell Rotation

Overview
Journal Adv Sci (Weinh)
Date 2017 Mar 3
PMID 28251046
Citations 31
Authors
Affiliations
Soon will be listed here.
Abstract

A major challenge in the field of optical imaging of live cells is achieving rapid, 3D, and noninvasive imaging of isolated cells without labeling. If successful, many clinical procedures involving analysis and sorting of cells drawn from body fluids, including blood, can be significantly improved. A new label-free tomographic interferometry approach is presented. This approach provides rapid capturing of the 3D refractive-index distribution of single cells in suspension. The cells flow in a microfluidic channel, are trapped, and then rapidly rotated by dielectrophoretic forces in a noninvasive and precise manner. Interferometric projections of the rotated cell are acquired and processed into the cellular 3D refractive-index map. Uniquely, this approach provides full (360°) coverage of the rotation angular range around any axis, and knowledge on the viewing angle. The experimental demonstrations presented include 3D, label-free imaging of cancer cells and three types of white blood cells. This approach is expected to be useful for label-free cell sorting, as well as for detection and monitoring of pathological conditions resulting in cellular morphology changes or occurrence of specific cell types in blood or other body fluids.

Citing Articles

Recent Technologies on 2D and 3D Imaging Flow Cytometry.

Ugawa M, Ota S Cells. 2025; 13(24.

PMID: 39768164 PMC: 11674929. DOI: 10.3390/cells13242073.


Microfluidic-based electrically driven particle manipulation techniques for biomedical applications.

Wang J, Cui X, Wang W, Wang J, Zhang Q, Guo X RSC Adv. 2025; 15(1):167-198.

PMID: 39758908 PMC: 11697266. DOI: 10.1039/d4ra05571c.


Label-free spatiotemporal decoding of single-cell fate via acoustic driven 3D tomography.

Wang Y, Zhou S, Quan Y, Liu Y, Zhou B, Chen X Mater Today Bio. 2024; 28:101201.

PMID: 39221213 PMC: 11364901. DOI: 10.1016/j.mtbio.2024.101201.


Design and implementation of a lab-on-a-chip for assisted reproductive technologies.

Safaefar F, Karamdel J, Veladi H, Maleki M Bioimpacts. 2024; 14(4):28902.

PMID: 39104621 PMC: 11298026. DOI: 10.34172/bi.2023.28902.


Bidirectional and Stepwise Rotation of Cells and Particles Using Induced Charge Electroosmosis Vortexes.

Wang S, Zhang Z, Ma X, Yue Y, Li K, Meng Y Biosensors (Basel). 2024; 14(3).

PMID: 38534219 PMC: 10968096. DOI: 10.3390/bios14030112.


References
1.
Kim K, Yoon H, Diez-Silva M, Dao M, Dasari R, Park Y . High-resolution three-dimensional imaging of red blood cells parasitized by Plasmodium falciparum and in situ hemozoin crystals using optical diffraction tomography. J Biomed Opt. 2013; 19(1):011005. PMC: 4019420. DOI: 10.1117/1.JBO.19.1.011005. View

2.
Kirschbaum M, Jaeger M, Schenkel T, Breinig T, Meyerhans A, Duschl C . T cell activation on a single-cell level in dielectrophoresis-based microfluidic devices. J Chromatogr A. 2008; 1202(1):83-9. DOI: 10.1016/j.chroma.2008.06.036. View

3.
Sung Y, Lue N, Hamza B, Martel J, Irimia D, Dasari R . Three-Dimensional Holographic Refractive-Index Measurement of Continuously Flowing Cells in a Microfluidic Channel. Phys Rev Appl. 2014; 1. PMC: 4236915. DOI: 10.1103/PhysRevApplied.1.014002. View

4.
Schnelle T, Muller T, Fuhr G . Dielectric single particle spectroscopy for measurement of dispersion. Med Biol Eng Comput. 1999; 37(2):264-71. DOI: 10.1007/BF02513297. View

5.
Girshovitz P, Shaked N . Real-time quantitative phase reconstruction in off-axis digital holography using multiplexing. Opt Lett. 2014; 39(8):2262-5. DOI: 10.1364/OL.39.002262. View